Search PubMed⌕ Search

Biomedical subjects

M D Gale

Publications and source records attributed to M D Gale.

22 records · Page 2Linked to original sources

Effect of Temperature on Gibberellin (GA) Responsiveness and on Endogenous GA(1) Content of Tall and Dwarf Wheat Genotypes.

Near-isogenic wheat (Triticum aestivum L.) lines differing in height-reducing (Rht) alleles were used to investigate the effects of temperature on endogenous gibberellin (GA) levels and seedling growth response to applied GA(3). Sheath and lamina lengths of the first leaf were measured in GA treated and control seedlings, grown at 11, 18, and 25 degrees C, of six Rht genotypes in each of two varietal backgrounds, cv Maris Huntsman and cv April Bearded. Endogenous GA(1) levels in the leaf extension zone of untreated seedlings were determined by gas chromatography-mass spectrometry with a deuterated internal standard in the six Maris Huntsman Rht lines grown at 10 and 25 degrees C. Higher temperature increased leaf length considerably in the tall genotype, less so in the Rht1 and Rht2 genotypes, and had no consistent effect on the Rht1+2, Rht3 and Rht2+3 genotypes. In all genotypes, endogenous GA(1) was higher at 25 degrees C than at 10 degrees C. At 10 degrees C the endogenous GA(1) was at a similar level in all the genotypes (except Rht2+3). At 25 degrees C it increased 1.6-fold in the tall genotype, 3-fold in Rht1 and Rht2, 6-fold in Rht3, and 9-fold in Rht1+2. Likewise, the genotypic differences in leaf length were very conspicuous at 25 degrees C, but were only slight and often unsignificant at 11 degrees C. The response of leaf length to applied GA(3) in the Rht1, Rht2, and Rht1+2 genotypes increased significantly with lowering of temperature. These results suggest the possibility that the temperature effect on leaf elongation is mediated through its effect on the level of endogenous GA(1) and that leaf elongation response to endogenous or applied GAs is restricted by the upper limits set by the different Rht alleles.

Journal Article↗

Location of chromosomal control of GA-induced enzyme release by distal half-grains of wheat.

The three enzymes, alpha-amylase, peroxidase, and acid phosphatase, are among those released by the aleurone of bread wheat, Triticum aestivum, as a direct response to gibberellins (GA) from the embryo during germination. Aneuploid genotypes are used to investigate the chromosomal location, nature, and extent of genetic control of the release of these enzymes in endosperms after induction by exogenous GA. Ditelosomics demonstrate the effect of removal of known chromosome arms, and tetrasomics show the effect of duplication of chromosome pairs. Quantitative analysis demonstrates complex control systems over and above those previously found using zymogram techniques. For alpha-amylase, chromosome arms with net promoter effects and chromosomes with net inhibitor effects were found. These effects were not chromosome-dosage responsive, unlike the promoter-inhibitor system found for acid phosphatase control. Peroxidase levels in the endosperms were generally high in both types of aneuploids. With one exception, all chromosomes showing involvement as ditelosomics showed a similar effect as tetrasomics, indicating that in the euploid a balanced state restricting, rather than promoting, peroxidase levels existed.

Acid Phosphatase↗

Norin-10-based semidwarfism.

Many short-strawed wheats, including the Norin-10-based semidwarfs now grown in many countries, are characterized by their relative "insensitivity" to gibberellic acid. The nature of this insensitivity, its genetic control, and the relationships between the Gai genes and the Rht genes, which control height reductiion in Norin-10 and Tom Thumb wheats, are described. The role and potential of these genes in agriculture and their relationship to other genes affecting yield, height, and other agronomic features are considered.

Chromosome Mapping↗